Motor with split structure
By installing the adjustment mechanism at the bottom of the motor body, fine-tuning of the motor in the X-axis, Y-axis and Z-axis directions is achieved, and the operational instability caused by deviation or misalignment after installation of the motor in the prior art is solved, simplifying the installation process and reducing the difficulty of operation.
Patent Information
- Application Number
- CN202421658670.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-15
- Publication Date
- 2025-06-27
- Estimated Expiration
- 2034-07-15
AI Technical Summary
There are slight deviations or misalignments after installation of existing split structure motors, resulting in unstable operation, vibration, noise or performance degradation, and complex disassembly and adjustments are required to ensure alignment and coordination.
The adjustment mechanism is installed at the bottom of the motor body, including an X-axis moving plate, a Y-axis moving plate and a Z-axis height adjustment part. Through the sliding and rotation of these components, the motor body is finely adjusted in the X-axis, Y-axis and Z-axis directions.
It can directly adjust and adjust in situ, avoiding complex disassembly and assembly steps, reducing working strength and difficulty, and ensuring alignment and coordination between the motor and the driven components.
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Figure CN223039788U_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of motors, and specifically to a motor with a split structure. Background Art
[0002] A motor is an important component in a transmission and control system. It refers to an electromagnetic device that realizes the conversion or transfer of electrical energy based on the law of electromagnetic induction. Its main function is to generate a driving torque and serve as a power source for electrical appliances or various machines, converting electrical energy into mechanical energy. A split-type motor usually consists of two parts: a motor body and a driver. The split-type stepper motor separates these two parts. The motor body can be fixed on the device to be driven, while the driver can be placed in a position convenient for control and adjustment, and the two are connected by wires.
[0003] Chinese Patent Authorization Publication No.: CN220964481U discloses a motor with a split structure. In this solution, by setting up a heat dissipation mechanism, first, the inner walls of the first housing and the second housing are adhered to the heat dissipation foam through silicone grease. After that, when the motor main body is installed in the first housing and the second housing, the heat dissipation foam will be in contact with the motor main body. Since the heat dissipation foam is made of materials such as graphene and glass fiber filaments, it has a good heat conduction effect and also has the function of isolating current. Therefore, the heat dissipation foam can well conduct the heat to the heat dissipation fins provided on the outer surfaces of the first housing and the second housing, so as to effectively dissipate heat, and at the same time, it can effectively avoid the occurrence of electric leakage.
[0004] At present, in the prior art, once the position of a split-type motor is installed, if there are slight deviations or misalignments, it may lead to instability, vibration, noise or performance degradation during operation. As a result, it is necessary to adjust the position of the motor body and reinstall it to ensure the alignment and fit between the motor and the driven component. However, the disassembly, installation and position adjustment of the motor require a certain amount of time and labor, increasing the operation difficulty.
[0005] Therefore, it is necessary to provide a motor with a split structure to solve the above problems.
[0006] It should be noted that the above information disclosed in this background art section is only used to understand the background art of the concept of the present application, and therefore, it may include information that does not constitute the prior art. Summary of the Utility Model
[0007] Based on the above problems existing in the prior art, the problem to be solved by this application is to provide a split-structured motor. By installing an adjustment mechanism at the bottom of the motor body, the motor body can be displaced in the X-axis, Y-axis, and Z-axis directions. When there are slight deviations or misalignments after the motor body is installed, the position of the motor body can be adjusted to ensure the alignment and fit between the motor and the driven component. Fine-tuning can be directly carried out in place, avoiding complex disassembly and assembly steps and reducing the working intensity and difficulty.
[0008] The technical solution adopted by this application to solve its technical problems is: a split-structured motor, including a motor body, a rotating shaft is installed on one side of the motor body, and an adjustment mechanism is installed at the bottom end of the motor body;
[0009] The adjustment mechanism includes a mounting plate, an X-axis moving plate, and a height-adjusting member. The X-axis moving plate is slidably connected to the mounting plate, and fastening members one are installed on both sides of the X-axis moving plate; the height-adjusting member is slidably connected to the X-axis moving plate, and fastening members two are installed on both sides of the height-adjusting member; the height-adjusting member includes a Y-axis moving plate, a height-adjusting plate, an abutting block, and a screw. The height-adjusting plate is connected to the bottom of the motor body, and the inclined surfaces are arranged on the sides of the height-adjusting plate and the abutting block close to each other. The height-adjusting plate is slidably connected to the inner side wall of the Y-axis moving plate. The screw is threadedly connected to the Y-axis moving plate, and one end of the screw is rotatably connected to the abutting block.
[0010] Further, a first slider is installed at the bottom of the X-axis moving plate, a first sliding groove adapted to the first slider is opened at the top of the mounting plate, and the first slider is slidably connected to the first sliding groove.
[0011] Further, the fastening member one includes a first connecting block, a first fastening bolt, and a first pressing block. The first connecting block is installed on one side of the X-axis moving plate, the first pressing block is slidably installed on one side of the X-axis moving plate, the first fastening bolt is threadedly connected to the first connecting block, and the bottom end of the first fastening bolt abuts against the first pressing block.
[0012] Further, a second slider is installed at the bottom end of the Y-axis moving plate, a second sliding groove adapted to the second slider is opened at the top of the X-axis moving plate, and the second slider is slidably connected to the second sliding groove.
[0013] Further, the fastening member two includes a second connecting block, a second pressing block, and a second fastening bolt. The second connecting block is installed on one side of the Y-axis moving plate, the second pressing block is slidably installed on one side of the Y-axis moving plate, the second fastening bolt is threadedly connected to the second connecting block, and the bottom end of the second fastening bolt abuts against the second pressing block.
[0014] Further, the second slider and the first slider are arranged perpendicular to each other.
[0015] Further, a T-shaped groove is formed on the inclined surface of the abutting block, and a T-shaped block matching the T-shaped groove is installed on the inclined surface of the height-adjusting plate. The T-shaped block is slidably connected to the T-shaped groove.
[0016] Further, the abutting block is slidably connected to the inner bottom of the Y-axis moving plate.
[0017] The beneficial effects of the present application are as follows: A split-structured motor provided by the present application can displace the motor body in the X-axis, Y-axis, and Z-axis directions by installing an adjusting mechanism at the bottom of the motor body. When there are slight deviations or misalignments after the motor body is installed, the position of the motor body can be adjusted to ensure the alignment and fit between the motor and the driven component. Fine-tuning can be directly performed in place, avoiding complex disassembly and assembly steps, and reducing the working intensity and difficulty.
[0018] In addition to the objectives, features, and advantages described above, the present application has other objectives, features, and advantages. The following will refer to the drawings for a further detailed description of the present application. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] The specification drawings forming a part of the present application are used to provide a further understanding of the present application. The schematic embodiments of the present application and their descriptions are used to explain the present application and do not constitute an improper limitation to the present application.
[0020] In the drawings:
[0021] Figure 1 is a schematic diagram of the overall structure;
[0022] Figure 2 is a schematic diagram of the structure of the adjusting mechanism;
[0023] Figure 3 is an exploded structure diagram of the adjusting mechanism;
[0024] Figure 4 is an exploded structure diagram of the height-adjusting member;
[0025] Figure 5 is a schematic diagram of the structure of the height-adjusting plate and the abutting block.
[0026] Among them, the reference numerals in the drawings are as follows:
[0027] 1. Motor body; 2. Rotating shaft; 3. Adjusting mechanism; 31. Mounting plate; 32. X-axis moving plate; 33. Lifting member; 331. Y-axis moving plate; 332. Second slider; 333. Lifting plate; 334. Contact block; 335. Screw; 336. Second connecting block; 337. Second pressing block; 338. Second fastening bolt; 34. First chute; 35. Second chute; 36. First slider; 37. First connecting block; 38. First fastening bolt; 39. First pressing block. Detailed implementation manners
[0028] It should be noted that, without conflict, the embodiments in this application and the features in the embodiments may be combined with each other. The following will describe this application in detail with reference to the drawings and in combination with the embodiments.
[0029] In order to enable those skilled in the art to better understand the solution of this application, the following will clearly and completely describe the technical solutions in the embodiments of this application with reference to the drawings in the embodiments of this application. Obviously, the described embodiments are only a part of the embodiments of this application, rather than all the embodiments. Based on the embodiments in this application, all other embodiments obtained by those of ordinary skill in the art without making creative efforts shall fall within the protection scope of this application.
[0030] As Figures 1-5 shown, this application provides a split-structured motor, including a motor body 1, a rotating shaft 2 is installed on one side of the motor body 1, and an adjusting mechanism 3 is installed at the bottom end of the motor body 1;
[0031] The adjusting mechanism 3 includes a mounting plate 31, an X-axis moving plate 32 and a lifting member 33. The X-axis moving plate 32 is slidably connected to the mounting plate 31, and fastening members one are installed on both sides of the X-axis moving plate 32; the lifting member 33 is slidably connected to the X-axis moving plate 32, and fastening members two are installed on both sides of the lifting member 33; the lifting member 33 includes a Y-axis moving plate 331, a lifting plate 333, a contact block 334 and a screw 335. The lifting plate 333 is connected to the bottom of the motor body 1, and the lifting plate 333 can be fixedly connected to the bottom of the motor body 1 by means of bolts. The inclined surfaces are arranged on the sides of the lifting plate 333 and the contact block 334 close to each other. The lifting plate 333 is slidably connected to the inner side wall of the Y-axis moving plate 331, and the lifting plate 333 can be slidably connected to the inner side wall of the Y-axis moving plate 331 by means of a slider and chute. The screw 335 is threadedly connected to the Y-axis moving plate 331, and one end of the screw 335 is rotatably connected to the contact block 334.
[0032] In this solution, it is used to generate driving torque, as a power source for electrical appliances or various machines, and converts electrical energy into mechanical energy. It adopts a split structure, and the motor body 1 is connected to an external driver through wires.
[0033] Among them, by installing an adjusting mechanism 3 at the bottom of the motor body 1, the motor body 1 can be displaced in the X-axis, Y-axis, and Z-axis directions. When there are slight deviations or misalignments after the installation of the motor body 1, the position of the motor body can be adjusted to ensure the alignment and fit between the motor and the driven component. Fine-tuning can be directly carried out in place, avoiding complex disassembly and assembly steps, and reducing the work intensity and difficulty.
[0034] Specifically, by controlling the X-axis moving plate 32 to slide on the surface of the mounting plate 31, the position adjustment of the motor body 1 in the X-axis direction is realized, and the position of the X-axis moving plate 32 is locked by using the first fastener. Moreover, by controlling the height-adjusting member 33 to slide on the surface of the X-axis moving plate 32, the position adjustment of the motor body 1 in the Y-axis direction is realized, and the position of the height-adjusting member 33 is locked by using the second fastener. In addition, by rotating the screw 335 to push the abutting block 334 to move in the horizontal direction, since the inclined surfaces are arranged on the sides of the height-adjusting plate 333 and the abutting block 334 that are close to each other, when the abutting block 334 moves, it will interact with the inclined surface of the height-adjusting plate 333, and this interaction causes the height-adjusting plate 333 to move in the vertical direction. By adjusting the rotation amount of the screw 335, the position of the motor body 1 in the Z-axis direction can be controlled.
[0035] As Figures 2-3 shown, a first slider 36 is installed at the bottom of the X-axis moving plate 32. The first slider 36 can be fixedly connected to the X-axis moving plate 32 by welding. A first sliding groove 34 adapted to the first slider 36 is formed at the top of the mounting plate 31, and the first slider 36 is slidably connected to the first sliding groove 34.
[0036] In this embodiment, the first slider 36 and the first sliding groove 34 are provided to limit the movement track of the X-axis moving plate 32 and improve the stability of the X-axis moving plate 32 during the movement process.
[0037] As Figures 2-3 shown, the first fastener includes a first connecting block 37, a first fastening bolt 38, and a first pressing block 39. The first connecting block 37 is installed on one side of the X-axis moving plate 32, and the first connecting block 37 can be fixed to the X-axis moving plate 32 by welding. The first pressing block 39 is slidably installed on one side of the X-axis moving plate 32, and the first pressing block 39 can be slidably connected to the X-axis moving plate 32 by using the slider and sliding groove method. The first fastening bolt 38 is threadedly connected to the first connecting block 37, and the bottom end of the first fastening bolt 38 abuts against the first pressing block 39.
[0038] In this embodiment, after the position of the X-axis moving plate 32 is adjusted, the first fastening bolt 38 can be screwed to push the first pressing block 39 downward, forcing the first pressing block 39 to squeeze the mounting plate 31, so as to fix the X-axis moving plate 32 at a certain position on the top of the first chute 34, ensuring that the motor body 1 remains stable at the adjusted position.
[0039] As Figures 3-4 shown, a second slider 332 is installed at the bottom end of the Y-axis moving plate 331. The second slider 332 can be fixedly connected to the Y-axis moving plate 331 by welding. A second chute 35 adapted to the second slider 332 is formed at the top of the X-axis moving plate 32, and the second slider 332 is slidably connected to the second chute 35.
[0040] In this embodiment, the movement track of the Y-axis moving plate 331 can be restricted by the provided second slider 332 and the second chute 35, improving the stability of the Y-axis moving plate 331 during movement.
[0041] As Figures 3-4 shown, the fastener two includes a second connecting block 336, a second pressing block 337 and a second fastening bolt 338. The second connecting block 336 is installed on one side of the Y-axis moving plate 331, and the second connecting block 336 can also be fixed to the Y-axis moving plate 331 by welding. The second pressing block 337 is slidably installed on one side of the Y-axis moving plate 331, and the second pressing block 337 can also be slidably connected to the Y-axis moving plate 331 by a slider-chute method. The second fastening bolt 338 is threadedly connected to the second connecting block 336, and the bottom end of the second fastening bolt 338 abuts against the second pressing block 337.
[0042] In this embodiment, after the position of the Y-axis moving plate 331 is adjusted, the second fastening bolt 338 can be screwed to push the second pressing block 337 downward, forcing the second pressing block 337 to abut against and squeeze the X-axis moving plate 32, so as to fix the Y-axis moving plate 331 at a certain position on the top of the X-axis moving plate 32.
[0043] As Figure 3 shown, the second slider 332 and the first slider 36 are arranged perpendicular to each other.
[0044] As Figure 5 shown, a T-shaped groove is formed on the inclined surface of the abutting block 334, and a T-shaped block matching the T-shaped groove is installed on the inclined surface of the height-adjusting plate 333. The abutting block 334 and the T-shaped block can be integrally formed, and the T-shaped block is slidably connected to the T-shaped groove.
[0045] In this embodiment, the height-adjusting plate 333 can be restricted by the provided T-shaped block and the T-shaped groove, preventing the height-adjusting plate 333 from separating from the abutting block 334.
[0046] As Figure 5 shown, the abutting block 334 is slidably connected to the inner bottom of the Y-axis moving plate 331.
[0047] In this embodiment, the stability of the horizontal movement of the abutting block 334 is ensured.
[0048] Working principle:
[0049] After installing the adjusting mechanism 3, when there are slight deviations or misalignments in the motor body 1, the X-axis moving plate 32 can be controlled to slide on the surface of the mounting plate 31 to adjust the position of the motor body 1 in the X-axis direction, and the position of the X-axis moving plate 32 is locked by the first fastener. Moreover, by controlling the height-adjusting member 33 to slide on the surface of the X-axis moving plate 32, the position of the motor body 1 in the Y-axis direction is adjusted, and the position of the height-adjusting member 33 is locked by the second fastener. In addition, by rotating the screw 335 to push the abutting block 334 to move horizontally, since the inclined surfaces are provided on the mutually approaching sides of the height-adjusting plate 333 and the abutting block 334, when the abutting block 334 moves, it will interact with the inclined surface of the height-adjusting plate 333, and this interaction causes the height-adjusting plate 333 to move in the vertical direction. By adjusting the rotation amount of the screw 335, the position of the motor body 1 in the Z-axis direction can be controlled.
[0050] The above are only the preferred embodiments of the present application and are not used to limit the present application. For those skilled in the art, various changes and modifications can be made to the present application. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present application shall be included in the protection scope of the present application.
Claims
1. A motor with a split structure, comprising a motor body (1), characterized in that: A rotating shaft (2) is installed on one side of the motor body (1), and an adjusting mechanism (3) is installed on the bottom end of the motor body (1); The adjusting mechanism (3) comprises a mounting plate (31), an X-axis moving plate (32) and a height adjusting member (33); the X-axis moving plate (32) is slidably connected to the mounting plate (31), and fasteners 1 are installed on both sides of the X-axis moving plate (32); the height adjusting member (33) is slidably connected to the X-axis moving plate (32), and fasteners 2 are installed on both sides of the height adjusting member (33); the height adjusting member (33) comprises a Y-axis moving plate (331), a height adjusting plate (332), and a Y-axis moving plate (333). 3), an abutment block (334) and a screw rod (335), the height adjustment plate (333) is connected to the bottom of the motor body (1), and the sides of the height adjustment plate (333) and the abutment block (334) close to each other are both arranged in an inclined surface, the height adjustment plate (333) is slidably connected to the inner wall of the Y-axis moving plate (331), the screw rod (335) is threadedly connected to the Y-axis moving plate (331), and one end of the screw rod (335) is rotatably connected to the abutment block (334).
2. The motor with a split structure according to claim 1, characterized in that: A first sliding block (36) is installed at the bottom of the X-axis moving plate (32), and a first sliding groove (34) adapted to the first sliding block (36) is opened at the top of the mounting plate (31), and the first sliding block (36) is slidably connected to the first sliding groove (34).
3. The motor with a split structure according to claim 1, characterized in that: The fastener 1 includes a first connecting block (37), a first fastening bolt (38) and a first clamping block (39), the first connecting block (37) is installed to one side of the X-axis moving plate (32), the first clamping block (39) is slidably installed to one side of the X-axis moving plate (32), the first fastening bolt (38) is threadedly connected to the first connecting block (37), and the bottom end of the first fastening bolt (38) is abutted against the first clamping block (39).
4. The motor with a split structure according to claim 1, characterized in that: A second sliding block (332) is installed at the bottom end of the Y-axis moving plate (331), and a second sliding groove (35) adapted to the second sliding block (332) is opened at the top of the X-axis moving plate (32), and the second sliding block (332) is slidably connected to the second sliding groove (35).
5. The motor with a split structure according to claim 1, characterized in that: The second fastener includes a second connecting block (336), a second clamping block (337) and a second fastening bolt (338), wherein the second connecting block (336) is installed to one side of the Y-axis moving plate (331), the second clamping block (337) is slidably installed to one side of the Y-axis moving plate (331), the second fastening bolt (338) is threadedly connected to the second connecting block (336), and the bottom end of the second fastening bolt (338) is abutted against the second clamping block (337).
6. The motor with a split structure according to claim 4, characterized in that: The second sliding block (332) is arranged perpendicular to the first sliding block (36).
7. The motor with a split structure according to claim 1, characterized in that: A T-shaped slot is provided on the inclined surface of the abutment block (334), and a T-shaped block matching the T-shaped slot is installed on the inclined surface of the height adjustment plate (333), and the T-shaped block is slidably connected to the T-shaped slot.
8. The motor with a split structure according to claim 1, characterized in that: The abutment block (334) is slidably connected to the inner bottom of the Y-axis moving plate (331).
Citation Information
Patent Citations
A motor with a split structure
CN220964481U